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利用高速原子力显微镜探测人工蛋白笼的结构动力学。

Probing structural dynamics of an artificial protein cage using high-speed atomic force microscopy.

机构信息

Heddle Initiative Research Unit, RIKEN, Wako, Saitama 351-0198, Japan.

出版信息

Nano Lett. 2015 Feb 11;15(2):1331-5. doi: 10.1021/nl5045617. Epub 2015 Jan 12.

Abstract

A cysteine-substituted mutant of the ring-shaped protein TRAP (trp-RNA binding attenuation protein) can be induced to self-assemble into large, monodisperse hollow spherical cages in the presence of 1.4 nm diameter gold nanoparticles. In this study we use high-speed atomic force microscopy (HS-AFM) to probe the dynamics of the structural changes related to TRAP interactions with the gold nanoparticle as well as the disassembly of the cage structure. The dynamic aggregation of TRAP protein in the presence of gold nanoparticles was observed, including oligomeric rearrangements, consistent with a role for gold in mediating intermolecular disulfide bond formation. We were also able to observe that the TRAP-cage is composed of multiple, closely packed TRAP rings in an apparently regular arrangement. A potential role for inter-ring disulfide bonds in forming the TRAP-cage was shown by the fact that ring-ring interactions were reversed upon the addition of reducing agent dithiothreitol. A dramatic disassembly of TRAP-cages was observed using HS-AFM after the addition of dithiothreitol. To the best of our knowledge, this is the first report to show direct high-resolution imaging of the disassembly process of a large protein complex in real time.

摘要

在 1.4nm 直径的金纳米粒子存在的情况下,一种环状蛋白 TRAP(色氨酸-RNA 结合衰减蛋白)的半胱氨酸取代突变体可以被诱导自组装成大的、单分散的空心球形笼。在这项研究中,我们使用高速原子力显微镜(HS-AFM)来探测与金纳米粒子相互作用以及笼状结构解组装相关的结构变化的动力学。在金纳米粒子存在的情况下,观察到 TRAP 蛋白的动态聚集,包括低聚重排,这与金在介导分子间二硫键形成中的作用一致。我们还能够观察到,TRAP 笼由多个紧密堆积的 TRAP 环以明显规则的排列方式组成。事实上,环-环相互作用在加入还原剂二硫苏糖醇后被逆转,这表明环间二硫键在形成 TRAP 笼中可能发挥了作用。在用二硫苏糖醇处理后,使用 HS-AFM 观察到 TRAP 笼的剧烈解组装。据我们所知,这是第一个实时显示大蛋白质复合物解组装过程的直接高分辨率成像的报告。

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